Disclosed is a fiber optic bend radius protection apparatus and cable management system for use in combination with a plurality of vertically spaced fiber optic cables. Embodiments of the invention provide a plurality of fiber guides used in combination to provide minimum bend radius even in situations in which the vertical spacing between adjacent fiber optic cables is less than the desired minimum bend radius. Other embodiments of the invention provide an improved fiber optic cable management system which reduces fiber optic cable displacement when accessing or installing fiber optic cables on fiber guides, by providing a movable side guide.
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23. A fiber optic cable support apparatus for use in combination with a first set of at least one fiber optic cable, comprising:
(a) a first fiber guide with a curved fiber support surface which is disposed to receive the first set of at least one fiber optic cable, the fiber support surface having a predetermined bend radius; (b) a support surface side guide pivotally mounted adjacent to a side of the first fiber guide, such that a first end of the side guide is configured to be pivoted between a first position in which the side guide extends above the fiber support surface of the first fiber guide to prevent fiber optic cable from being dislodged from the first fiber guide support surface; and further wherein the first end of the side guide is configured to be pivoted to a second position which is recessed from the first position, thereby easing the ability to move fiber optic cable on and off the first fiber guide support surface.
12. A fiber optic bend radius protection apparatus for use in combination with a first set of at least one fiber optic cable and a second set of at least one fiber optic cable spaced apart from the first set of at least one fiber optic cable, the bend radius protection apparatus comprising:
(a) a first fiber guide with a curved fiber support surface which is disposed to receive the first set of at least one fiber optic cable, the fiber support surface having a predetermined bend radius; (b) a second fiber guide spaced apart from the first fiber guide, and disposed to receive the second set of at least one fiber optic cable, and further disposed to receive the first set of at least one fiber optic cable from the first fiber guide, the second fiber guide having a curved fiber support surface with a predetermined bend radius for a minimum bend protection angle; wherein the first fiber guide has a shorter height than the second fiber guide.
1. A fiber optic bend radius protection apparatus for use in combination with a first set of at least one fiber optic cable and a second set of at least one fiber optic cable spaced apart from the first set of at least one fiber optic cable, the bend radius protection apparatus comprising:
(a) a first fiber guide with a curved fiber support surface which is disposed to receive the first set of at least one fiber optic cable, the fiber support surface having a predetermined bend radius; (b) a second fiber guide spaced apart from the first fiber guide, and disposed to receive the second set of at least one fiber optic cable, and further disposed to receive the first set of at least one fiber optic cable from the first fiber guide, the second fiber guide having a curved fiber support surface with a predetermined bend radius for a minimum bend protection angle; wherein the first fiber guide and the second fiber guide combine to provide the predetermined bend radius for the minimum bend protection angle for fiber optic cables supported by both the first fiber guide and the second fiber guide.
11. A high density fiber optic connector assembly with a bend radius protection apparatus, comprising:
(a) an assembly housing; (b) a first set of fiber optic connectors mounted on said assembly housing, each set of fiber optic connectors including a first set of at least one fiber optic cable operatively attached thereto; (c) a second set of fiber optic connectors mounted on said assembly housing a distance apart from the first set of fiber optic connectors, the second set of fiber optic connectors including a second set of at least one fiber optic cable operatively attached thereto; (d) a first fiber guide with a curved fiber support surface which is disposed to receive the first set of at least one fiber optic cable, the fiber support surface having a predetermined bend radius; (e) a second fiber guide spaced apart from the first fiber guide, and disposed to receive the second set of at least one fiber optic cable, and further disposed to receive the first set of at least one fiber optic cable from the first fiber guide, the second fiber guide having a curved fiber support surface with a predetermined bend radius for a minimum bend protection angle; wherein the first fiber guide and the second fiber guide combine to provide the predetermined bend radius for the minimum bend protection angle for fiber optic cables supported by both the first fiber guide and the second fiber guide.
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This invention relates to a fiber optic cable bend radius management system particularly well suited for use in high density fiber assemblies and frameworks.
In the telecommunications industry there are numerous locations where a significant amount of fiber optic cable must be routed within a facility or from one facility to another. The number of fibers may be great and the fibers must all be handled with great care to avoid damage to the fiber optic cable, which hinders its performance. For instance, it is important to maintain a minimum bend radius to protect the fiber optic cables. A minimum bend radius may for example be one and one-half inches, it may be thirty millimeters (30 mm) or any other standard adopted for a particular fiber optic cable.
Fiber optic cable distribution frames, bays or panels are generally utilized to provide termination, cross-connect, splice, patch and storage interface between fiber-optic cables that lead to user installations.
These bays typically include high density fiber distribution frameworks which include fiber-optic cross connection and/or patching functions or features. Typically, but not always, outside plant (OSP) fiber optic cables are routed into the facility and need to be connected to equipment or to other fiber optic cable.
The increase in use of telecommunication fiber optic cables has brought with it the need to increase the capacity of existing facilities, and the need to increase the density of connections or inter-connections per given area.
As density increases and the vertical spacing between fiber optic connectors decreases, the management of the fiber optic cable and the maintenance of the minimum bend radius becomes more and more difficult due to the geometrical limitations imposed by the decreased vertical spacing of the fiber optic connectors.
In some of the higher density applications in which the center-to-center spacing between fiber optic cables in the connectors is less than the minimum bend radius, the minimum bend radius has not always been maintained.
Embodiments of this invention utilize a combination of a first fiber guide structure and a second fiber guide structure, wherein the first fiber guide structure may, but need not, be dissimilar to the second fiber guide structure. This dissimilarity may be in length, shape, horizontal position and/or orientation.
It is also desirable to minimize the necessary movement of fiber optic cable, including when placing the cable on fiber optic cable supports and fiber guides. In some prior art fiber supports and guides, there are insufficient side walls to assure the fiber optic cables don't slip or become dislodged from the guide or support. In other prior art fiber supports and guides, such as with fanning strips for instance, there is a sufficient side wall or side guide, but in order to place and remove fiber optic cable onto the guide or support, the cable must be moved up and over the side guide or side wall, thus causing unnecessary displacement of the fiber optic cable.
An embodiment of this invention provides an additional feature of a movable side guide or movable side wall, one which moves from a first position where it acts as a side guide or side wall, to a second position where it is not as much of a side guide or side wall or is not one at all. The ability to move the side guide to a first position to retain the fiber optic cable and to a second position for easy installation and removal of fiber optic cable (with minimum fiber optic cable displacement) better manages and protects the fiber optic cables.
Preferred embodiments of the invention are described below with reference to the accompanying drawings, which are briefly described below.
This disclosure of the invention is submitted in furtherance of the constitutional purposes of the U.S. Patent Laws "to promote the progress of science and useful arts" (Article 1, Section 8).
Many of the fastening, connection, manufacturing and other means and components utilized in this invention are widely known and used in the field of the invention described, and their exact nature or type is not necessary for an understanding and use of the invention by a person skilled in the art or science; therefore, they will not be discussed in significant detail. Furthermore, the various components shown or described herein for any specific application of this invention can be varied or altered as anticipated by this invention and the practice of a specific application or embodiment of any element may already be widely known or used in the art or by persons skilled in the art or science; therefore, each will not be discussed in significant detail.
The terms "a", "an", and "the" as used in the claims herein are used in conformance with long-standing claim drafting practice and not in a limiting way. Unless specifically set forth herein, the terms "a", "an", and "the" are not limited to one of such elements, but instead mean "at least one".
The term "framework" as used herein need not be continuous or in any specific number of pieces. However it will be appreciated by those skilled in the art that the framework could be one piece, two piece or more than two pieces. Furthermore, the framework as contemplated by this invention need not be in one continuous section, but instead may also be divided up into multiple sections or segments.
The term "fiber optic connector" or "connector" as used herein is well known and defined in the art, and is intended to broadly cover all types and kinds of connectors, past and future, no one of which is necessary to practice this invention. Generally a connector is a mechanical device used to align and join two fiber optic cables together to provide a means to attach and decouple it to transmitters, receivers or to another fiber. Commonly used connectors are without limitation, ST Connector-Compatible connectors, FC, FCPC, Biconic, SC, E2000, D4, and SMA 905 or 906 connectors.
The term "fiber optic adapter" or "adapter" as used herein is also well known and defined in the art, and is the apparatus which retains the fiber optic connectors and provides the structure to hold the fiber optic connectors and to mount the connectors to other equipment, panels, bulkheads, frameworks, and the like. Adapter is sometimes also referred to as a coupling or mating bushing in the industry.
The term fiber guide framework as used herein is not limited to a backing piece to which the first fiber guide and the second fiber guide are attached, integral or one piece with, but also includes any structure or combination of structures which retains the first fiber guide relative to the second fiber guide.
The term fiber support surface, as used herein, means a surface which supports or guides fiber optic cables, whether the surface supports the fiber optic cable on it, supports or guides it from the side such as in a horizontal application of the fiber guides, or at any other angle.
When the term pivotally mounted is used regarding the support surface side guide, it means pivotally mounted to provide movement of the side guide in the general direction the fiber optic cable is oriented and in directions perpendicular to the direction the fiber optic cable is oriented.
As can be seen in the example, the fiber optic cables start approximately horizontal and end up approximately vertical, with bend radius support through the portions of the guide system where bends in the fiber optic cable are occurring. As can also be seen, the vertical center-to-center spacing of the fiber optic cables, 103 and 104 for example, is less than the bend radius for the first fiber guide 141 and the second fiber guide 142.
While the embodiments of the invention shown position the fiber guides vertically, that is only one embodiment of the invention and other embodiments may be horizontal applications, applications for routing cable upward, or any angle in between.
In the fiber management and routing area, fiber guides are attached to housing 164. In this embodiment, a first set of at least one fiber optic cable 161 are received from a tray and supported on the fiber support surface of first fiber guide 165, and similarly a second set of at least one fiber optic cable 162 are received from a tray and supported on the fiber support surface of second fiber guide 166.
In the fiber management and routing area, fiber guides are attached to housing 164. In this embodiment, a third set of at least one fiber optic cable 231 are received from a tray and supported on the fiber support surface of fiber guide 180. Similarly a second set of at least one fiber optic cable 232 are received from a tray and supported on the fiber support surface of second fiber guide 182. A first set of at least one fiber optic cable 231 are received from a tray and supported on the fiber support surface of first fiber guide 181.
As will be appreciated by those of ordinary skill in the art, the combination of the first fiber guide 188 and the second fiber guide 189 provides the desired or predetermined minimum bend protection angle for the fiber.
As will be appreciated by those of reasonable skill in the art, there are numerous embodiments to this invention, and variations of elements and components which may be used, all within the scope of this invention.
One embodiment of this invention for example involves a fiber optic bend radius protection apparatus for use in combination with a first set of at least one fiber optic cable and a second set of at least one fiber optic cable spaced vertically below the first set of at least one fiber optic cable, the bend radius protection apparatus comprising: a first fiber guide with a curved fiber support surface which is disposed to receive the first set of at least one fiber optic cable, the fiber support surface having a predetermined bend radius; a second fiber guide spaced below the first fiber guide, and disposed to receive the second set of at least one fiber optic cable, and further disposed to receive the first set of at least one fiber optic cable from the first fiber guide, the second fiber guide having a curved fiber support surface with a predetermined bend radius for a minimum bend protection angle; wherein the first fiber guide and the second fiber guide combine to provide the predetermined bend radius for the minimum bend protection angle for fiber optic cables supported by both the first fiber guide and the second fiber guide.
The minimum bend protection angle may be sixty degrees or more, but preferably at least ninety degrees.
Some embodiments of this invention are most effective or useful when the second set of at least one fiber optic cable is spaced below the first set of at least one fiber optic cable a distance equal to or less than the predetermined bend radius
Additional embodiments of this invention provide a ready way to access, place and remove fiber optic cable from a fiber guide with a movable side guide that provides a side retention mechanism for one and/or two fiber guide rails. In the embodiment in which the movable side guide pivots to provide this for two fiber guides, a second end of the side guide extends downward to a position adjacent the second fiber guide support surface to prevent fiber optic cable from being dislodged from the second fiber guide support surface when the side guide is in the first position and retracts from the second fiber guide support surface when the side guide is in the second position, thereby easing the ability to move fiber optic cable on and off the second fiber guide support surface. In embodiment, the preferred embodiment, the side guide is pivotally mounted to provide movement of the side guide in the direction the fiber optic cable is oriented.
This invention is not limited to two fiber guides, but instead embodiments include three or more fiber guides as well.
Embodiments of this invention also include high density fiber optic connector assemblies with a bend radius protection apparatus therein.
Embodiments of this invention may also include a fiber optic bend radius protection apparatus with the fiber guides as described above and wherein dissimilar vertical and horizontal lengths of the fiber guides are utilized on vertically adjacent fiber guides.
Embodiments of this invention also include a fiber optic cable support apparatus for use in combination with a first set of at least one fiber optic cable, comprising: a first fiber guide with a curved fiber support surface which is disposed to receive the first set of at least one fiber optic cable, the fiber support surface having a predetermined bend radius; a support surface side guide pivotally mounted adjacent to a side of the first fiber guide, such that a first end of the side guide may be pivoted between a first position in which the side guide extends above the fiber support surface of the first fiber guide to prevent fiber optic cable from being dislodged from the first fiber guide support surface; and further wherein the first end of the side guide may be pivoted to a second position which is recessed from the first position, thereby easing the ability to move fiber optic cable on and off the first fiber guide support surface.
Further and additional embodiments would then include the foregoing but further include a second fiber guide spaced below the first fiber guide, and disposed to receive a second set of at least one fiber optic cable, the second fiber guide having a curved fiber support surface with a predetermined bend radius for a minimum bend protection angle; and further wherein a second end of the side guide extends downward to a position adjacent the second fiber guide support surface to prevent fiber optic cable from being dislodged from the second fiber guide support surface when the side guide is in the first position; and wherein the second end of the side guide is retracted from the second fiber guide support surface when the side guide is in the second position, thereby easing the ability to move fiber optic cable on and off the second fiber guide support surface.
In compliance with the statute, the invention has been described in language more or less specific as to structural and methodical features. It is to be understood, however, that the invention is not limited to the specific features shown and described, since the means herein disclosed comprise preferred forms of putting the invention into effect. The invention is, therefore, claimed in any of its forms or modifications within the proper scope of the appended claims appropriately interpreted in accordance with the doctrine of equivalents.
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